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超声限域微载体颗粒上抗体偶联物的组装。

Antibody Conjugate Assembly on Ultrasound-Confined Microcarrier Particles.

机构信息

Washington University in St. Louis, 1 Brookings Drive, Jubel Hall, Room 203K, St. Louis, Missouri 63130, United States.

出版信息

ACS Biomater Sci Eng. 2020 Nov 9;6(11):6108-6116. doi: 10.1021/acsbiomaterials.0c01162. Epub 2020 Oct 9.

Abstract

Bioconjugates are important next-generation drugs and imaging agents. Assembly of these increasingly complex constructs requires precise control over processing conditions, which is a challenge for conventional manual synthesis. This inadequacy has motivated the pursuit of new approaches for efficient, controlled modification of high-molecular-weight biologics such as proteins, carbohydrates, and nucleic acids. We report a novel, hands-free, semiautomated platform for synthetic manipulation of biomolecules using acoustically responsive microparticles as three-dimensional reaction substrates. The microfluidic reactor incorporates a longitudinal acoustic trap that controls the chemical reactions within a localized acoustic field. Forces generated by this field immobilize the microscale substrates against the continuous flow of participating chemical reagents. Thus, the motion of substrates and reactants is decoupled, enabling exquisite control over multistep reaction conditions and providing high-yield, high-purity products with minimal user input. We demonstrate these capabilities by conjugating clinically relevant antibodies with a small molecule. The on-bead synthesis comprises capture of the antibody, coupling of a fluorescent tag, product purification, and product release. Successful capture and modification of a fluorescently labeled antibody are confirmed via fold increases of 49 and 11 in the green (antibody)- and red (small-molecule dye)-channel median intensities determined using flow cytometry. Antibody conjugates assembled on acoustically responsive, ultrasound-confined microparticles exhibit similar quality and quantity to those prepared manually by a skilled technician.

摘要

生物缀合物是重要的下一代药物和成像剂。这些日益复杂的结构的组装需要对处理条件进行精确控制,这对传统的手动合成来说是一个挑战。这种不足促使人们寻求新的方法来有效地、可控地修饰高分子量的生物分子,如蛋白质、碳水化合物和核酸。我们报告了一种新颖的、无需人工干预的半自动平台,用于使用对声响应的微颗粒作为三维反应底物来合成生物分子。该微流控反应器包含一个纵向声阱,可在局部声场中控制化学反应。该场产生的力将微尺度的底物固定在连续流动的参与化学试剂上。因此,底物和反应物的运动是解耦的,从而可以对多步反应条件进行精确控制,并提供高产率、高纯度的产品,用户输入最小。我们通过将临床相关抗体与小分子缀合来证明这些能力。在珠上合成包括抗体的捕获、荧光标记的偶联、产物的纯化和产物的释放。通过使用流式细胞术确定的绿色(抗体)和红色(小分子染料)通道中中值强度分别增加了 49 和 11,证实了荧光标记抗体的成功捕获和修饰。在声响应、超声限制的微颗粒上组装的抗体缀合物的质量和数量与熟练技术人员手动制备的相似。

相似文献

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Antibody Conjugate Assembly on Ultrasound-Confined Microcarrier Particles.超声限域微载体颗粒上抗体偶联物的组装。
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本文引用的文献

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Tuning the Coupled-Domain Response for Efficient Ultrasonic Droplet Generation.调整耦合域响应以实现高效超声微滴生成。
IEEE Trans Ultrason Ferroelectr Freq Control. 2018 Oct;65(10):1893-1904. doi: 10.1109/TUFFC.2018.2859195. Epub 2018 Jul 24.
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Augmented longitudinal acoustic trap for scalable microparticle enrichment.用于可扩展微粒富集的增强型纵向声阱
Biomicrofluidics. 2018 Jun 7;12(3):034110. doi: 10.1063/1.5036923. eCollection 2018 May.
10
Next generation antibody drugs: pursuit of the 'high-hanging fruit'.下一代抗体药物:追求“高挂的果实”。
Nat Rev Drug Discov. 2018 Mar;17(3):197-223. doi: 10.1038/nrd.2017.227. Epub 2017 Dec 1.

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